The present invention relates to wireless converters, in particular, to multi-input, multi-output reconfigurable wireless converters.
The wireless device is software-defined radio system, which is made up of a radio, converter, local oscillators, multipliers and discrete antenna elements that can operate at any frequency, any band, and any protocol. The novelty is that it will be able to interface or connect any of existing devices to future 5G protocols and beyond. Furthermore, the device can be use both as a radio and radar by being able to update via software the right algorithms for those specific applications. The dynamic range of the device allows for lower than −90 dBm of sensitivity at 5G frequencies making it first in the market and allowing for substantial range from its base. The device does this by utilizing up to 8 channels of transmit and receive radio frequency paths. The device is made up of 8 discrete transmit and receive converters that up converts to 5G frequencies or any other frequency with beyond 1 GHz bandwidth capability. It utilizes local oscillators that can provide −135 dBc/Hz phase noise at 10 kHz from carrier providing substantial benefit to the 5G movement. The 8 different T/R converters are routed to 54 different organic-base antenna designs that provide 20 degrees beam width with 17 dBi of gain at 28 GHz. The system generates up to more than 40 W of radiated power per element. There are more than 432 radio frequency traces embedded into an organic board that operates at 28 GHz. By doing this, the device has substantially reduced the cost of the hardware by eliminating all of the cable/connectors. Existing software defined radios do not have the built-in flexibility of cost and capability. 5G radios have a difficult time going through buildings and glass.
Similar radios at these frequencies do not have the dynamic range, power, modular cost approach, phase noise, dual use (radio, radar, jammer) and/or frequency and bandwidth agility.
Fundamentally, the device is a low cost, high volume manufacturable for 5G applications. It is able to go through glass and buildings by adjusting wireless frequency or medium like fiber optics, ethernet and/or any other protocol out there. The device can be use as a repeater at any frequency and a signal booster at any range.
It is an objective of the present invention to provide converter systems that allow for universal radio system that can be use at any frequency, bandwidth and protocol as specified in the independent claims. Embodiments of the invention are given in the dependent claims. Embodiments of the present invention can be freely combined with each other if they are not mutually exclusive.
One of the unique and inventive technical features of the present invention is the implementation and integration of the converter assembly, switch matrix assembly and the antenna elements while eliminating substantial cost and size due to cable assemblies. Furthermore, the ability to create low phase noise oscillator frequencies, a novel approach to filtering and the creating of a low cost antenna element makes the device a novel creation. Without wishing to limit the invention to any theory or mechanism, it is believed that the technical feature of the present invention advantageously provides lowest phase noise, most dynamic range, highest power with 360 degree coverage for 5G and radar applications. None of the presently known prior references or work has the unique inventive technical feature of the present invention.
Any feature or combination of features described herein are included within the scope of the present invention provided that the features included in any such combination are not mutually inconsistent as will be apparent from the context, this specification, and the knowledge of one of ordinary skill in the art. Additional advantages and aspects of the present invention are apparent in the following detailed description and claims.
The features and advantages of the present invention will become apparent from a consideration of the following detailed description presented in connection with the accompanying drawings in which:
Following is a list of elements corresponding to a particular element referred to herein:
101 field programmable gate array (FPGA)
103 signal converter
104 switch matrix
105 local oscillator
106 wireless transceiver
107 antenna
201 FPGA
202 phase locked loop
203 loop offset circuit
204 mixer
210 reference oscillation
211 phase locked loop
212 offset signal
Referring now to
In some embodiments, the transmit channel may comprise a mixer operatively connected to the input, a local oscillator (105) operatively connected to the mixer, a filter operatively connected to the output of the mixer, and a radio frequency amplifier operatively connected to the output of the filter. The mixer may be capable of mixing a signal at the first frequency with the output oscillation of a local oscillator and producing an output signal at the second frequency. The local oscillator (105) may be capable of generating an oscillation at a conversion frequency that is configurable. For instance, the conversion frequency is configured such that output of the mixer converts the signal to the second frequency. In one embodiment, the filter may be configured to filter the output of the mixer to pass frequency components within a bandwidth of the second frequency. In another embodiment, the radio frequency amplifier may be capable of amplifying the output signal of the filter.
In some embodiments, the receive channel may comprise a mixer operatively connected to the output, a local oscillator (105) operatively connected to the mixer, a filter operatively connected to the output of the mixer, and a radio frequency amplifier operatively connected to the output of the filter. The mixer may be capable of mixing a signal at the second frequency with the output oscillation of a local oscillator, producing an output signal at the first frequency. The local oscillator (105) may be capable of generating an oscillation at a conversion frequency that is configurable. In one embodiment, the conversion frequency is configured such that output of the mixer converts the signal to the first frequency. In some embodiments, the filter may be configured to filter the output of the mixer to pass frequency components within a bandwidth of the first frequency. In other embodiments, the radio frequency amplifier may be capable of amplifying the output signal of the filter.
In other embodiments, the first switch is operatively connected to the input of the converter, and to the mixer of the transmit channel and the amplifier of the receive channel. In some other embodiments, the second switch is operatively connected to the output of the converter, and to the amplifier of the transmit channel and the mixer of the receive channel.
In some embodiments, each antenna may be operatively connected to at least one of the plurality of wireless transceivers. In one embodiment, the wireless transceivers (106) are capable of sending and receiving wireless signals at the second frequency. In another embodiment, the antennas (107) are capable of sending and receiving wireless signals at the second frequency. In other embodiments, the switch matrix (104) may be operatively connected to the plurality of converters and the plurality of transceivers. The switch matrix (104) is capable of being configured to route a signal between any of the plurality of converters to any of the second plurality of transceivers. In further embodiments, the input transceivers may be operatively connected to the FGPA and are capable of receiving wireless signals having a plurality of frequencies and protocols.
In some embodiments, the field programmable gate array may be operatively connected to the converter assembly, the switch matrix, and the plurality of transceivers. Preferably, the FPGA is reprogrammable and can be programmed to transmit and receive signals having a plurality of wireless protocols. In one embodiment, the FPGA may be configured to execute software. The software execution may comprise configuring each of the converters to act as a transmit channel or a receive channel, comprising setting the first and second switches of the converter to route a signal through either the transmit channel or the receive channel of the converter; configuring each of the plurality of converters to convert a signal between a first wireless protocol and a second wireless protocol, comprising configuring the local oscillator of the wireless converter to the frequency needed to convert the signal from the first frequency to the second frequency when the transmit channel is active, or from the second frequency to the first frequency, when the receive channel is active; configuring the switch matrix to connect each of the plurality of wireless converters to one of the second plurality of wireless transceivers; sending a signal at the first frequency to the transmit channel of at least one of the plurality of converters; and receiving a signal at the first frequency from the receive channel of at least one of the plurality of converters.
In some embodiments, the FPGA sends a wireless signal to at least one of the converters. The FGPA can configure the local oscillator of the converter to a conversion frequency. The FGPA can also configure the first and second switches of the converter to use the transmit channel of the converter, and the frequency of the local oscillator to the frequency needed to upconvert the signal from the first frequency to the second frequency. The signal can be mixed with the frequency of the local oscillator and filtered to remove frequency components not within the bandwidth of the second frequency. The switch matrix can route the signal from the converter to at least one of the second plurality of transceivers, and the signal is transmitted by the antenna which is operatively connected to the transceiver.
In one embodiment, when a wireless signal is received by one of the antennas, it is received by the transceiver that is connected to the antenna, and routed by the switch matrix to one of the plurality of wireless converters. The FPGA can configure the converter to the receive channel of the converter, and the local oscillator to the frequency needed to convert the signal from the second frequency to the first frequency. The signal is converted from the second frequency to the first frequency and filtered to remove frequency components not within the bandwidth of the first frequency. The resulting signal is then received by the FPGA.
Referring to
In one embodiment, the antennas may comprise a microstrip and a stripline helix to create a polyrod antenna. The polyrod antennas and the transceivers may be integrated into stack assemblies on a printed circuit board. In another embodiment, the switch matrix may be configured to route a signal from any of the plurality of wireless transceivers to any other of the plurality of wireless transceivers. Consequently, the converter acts as a repeater. In some embodiments, the plurality of wireless transceivers automatically adjusts the power levels of the outgoing signal during transmission.
In a non-limiting embodiment, the second frequency may be 28 GHz. Accordingly, the FPGA may be programmed to convert between a first protocol and a 5G protocol.
As used herein, the term “about” refers to plus or minus 10% of the referenced number.
Although there has been shown and described the preferred embodiment of the present invention, it will be readily apparent to those skilled in the art that modifications may be made thereto which do not exceed the scope of the appended claims. Therefore, the scope of the invention is only to be limited by the following claims. Moreover, reference numbers recited in the below claims are solely for ease of examination of this patent application, and are exemplary, and are not intended in any way to limit the scope of the claims to the particular features having the corresponding reference numbers in the drawings. In some embodiments, the figures presented in this patent application are drawn to scale, including the angles, ratios of dimensions, etc. In some embodiments, the figures are representative only and the claims are not limited by the dimensions of the figures. In some embodiments, descriptions of the inventions described herein using the phrase “comprising” includes embodiments that could be described as “consisting essentially of” or “consisting of”, and as such the written description requirement for claiming one or more embodiments of the present invention using the phrase “consisting essentially of” or “consisting of” is met.
This application is a non-provisional and claims benefit of U.S. Patent Application No. 62/795,934, filed Jan. 23, 2019, the specification(s) of which is/are incorporated herein in their entirety by reference.
Number | Date | Country | |
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62795934 | Jan 2019 | US |